The
The insensitivity of cultured blastocysts to LPS toxicity and the tolerance of ICM in a blastocyst to IFNγ cytotoxicity
108 , 111 , 114 , 118 are in line with the refractory nature of ESCs to inflammatory
insults (discussed in section 7 ). However, the effect of TNFα on cultured blastocysts is
intriguing since the reduced size of ICM suggests that ICM cells are susceptible to TNFα cytotoxicity. 122 – 125 This is somewhat unexpected since
pluripotent ICM cells are presumably less sensitive to TNFα based on in vitro studies of ESCs. A major difficulty in
interpreting the results from in vitro embryo culture is the lack of knowledge about immunological properties of trophoblasts at the
blastocyst stage. None of the cited studies have specifically investigated the signaling events that mediate the effect of TNFα
and IFNγ in the ICM cells or trophoblasts. In the case of TNFα, reduced ICM size could be a secondary effect exerted by
activated trophoblasts (if they have a functional signaling pathway for TNFα) via paracrine signaling. However, a more
plausible scenario could be that a cultured embryo is a highly dynamic structure with rapidly proliferating/differentiating ICM and
trophoblast cells and that these cells (or a certain population of these cells) may have gained the ability to respond to TNFα
and become sensitive to its cytotoxic effects during the course of in vitro culture. This hypothesis is supported by the finding that
TNFR1 (the receptor that mediates the effect of TNFα) is not expressed in mESCs or in E4 blastocysts but is induced in E6.5-9.5
blastocysts after in vitro culture. 13 , 122 , 122 Whether TNFR1 is expressed in the ICM or trophectoderm or both in cultured
blastocysts was not investigated, but in situ hybridization analysis of the placenta at E7.5 embryo in the uterus revealed that
TNFα mRNA was detected only in trophoblast cells and not in the embryo proper or ectoplacental cone. 122 This finding suggests that TNFα signaling mechanisms are more developed in the
trophectoderm.
The transient existence of PSCs during early embryogenesis makes it difficult to capture their immunological behavior in vivo.
This is possible in ESCs, which represent PSCs that are artificially “arrested” in the pluripotent state at a time point
when their innate immunity has not developed. From this perspective, it is rational to question the physiological relevance of the
findings from in vitro cultured ESCs with respect to the transient existence of PSCs in vivo, but this narrow window probably
represents one of the most critical times for embryo development and a successful pregnancy. As illustrated by in vivo mouse models,
although low dosage of LPS given to mice before implantation only caused little overt adverse impact on blastocyst development, its
embryotoxic effect is long-lasting since LPS-treated mice showed developmental defects in late gestation. 108 , 111 Therefore, the lack of response of mESC-FBs,
mESC-derived smooth muscle cells, and hESC-derived endothelial cells to LPS is of particular significance. 12 , 16 , 21 , 40 Furthermore, the mechanisms that mediate innate immune response are gradually developed.
ESC-FBs are still relatively insensitive to the cytotoxicity of poly IC and TNFα compared to fully differentiated
fibroblasts. 19 , 40 This is likely the
case for other ESC-differentiated tissue cells since they also have attenuated innate immune response. 12 , 13 , 16 , 64 , 65 , 126 This
means that the attenuated innate immunity makes PSCs as well as their newly differentiated cells less vulnerable to embryotoxic
cytokines. While more studies will be needed to demonstrate the physiological relevance of immunological properties of ESCs to PSCs
and differentiating cells in an embryo, the current data present a compelling case for the hypothesis that attenuated innate immune
responses could be a protective mechanism for PSCs to avoid cytotoxicity resulting from inflammation and immune responses.
Escs
Our recent studies demonstrated that mESCs and mESC-FBs are indeed less vulnerable than their fully differentiated
counterparts to the cytotoxicity associated with inflammatory responses. TNFα and IFNγ are two of the best-characterized
inflammatory cytokines. Their excessive production can lead to deleterious immunologic consequences, including pregnancy
complications. 77 The cytotoxic effect of TNFα is mainly associated
with its apoptosis-inducing activity. 78 TNFα alone did not cause detectable
toxicity in mESCs and mESC-FBs. 40 However, in the presence of transcription
inhibitor actinomycin D that is known to potentiate TNFα toxicity, 79 , 80 TNFα caused cell death of mESC-FBs (which have gained the ability to respond
to TNFα) but not mESCs that do not respond to TNFα. Furthermore, infection with Chikungunya virus made mESC-FBs more
sensitive to TNFα cytotoxicity than mESCs. 40 This study suggests that the
lack of response to TNFα enables mESCs to avoid TNFα cytotoxicity. IFNγ, a type II IFN mainly secreted by T cells
and NK cells, is known to inhibit cell proliferation and induce apoptosis of tissue cells. 81 It has been reported that TNFα and IFNγ synergistically potentiate each other’s
cytotoxicity. 82 Like TNFα, IFNγ alone does not cause apparent
toxicity in either mESCs or mESC-FBs, but the combination of the two cytokines causes cell cycle inhibition in mESC-FB and not in
mESCs (unpublished data). Therefore, mESCs are insensitive to the cytotoxic effects of TNFα and IFNγ that otherwise
significantly reduce the viability and proliferation of differentiated tissue cells.
LPS-induced inflammatory responses, resembling certain aspects of bacterial infection, can cause serious cell and tissue
damage. Its cytotoxicity can be further potentiated by IFNγ. 83 , 84 As previously mentioned, mESC-FBs have gained limited responsiveness to poly IC and
TNFα, but they are still insensitive to LPS like mESCs. 19 , 40 In a recent study, we compared the effect of LPS on mESC-FBs to mouse bone marrow mesenchymal
stem cells (BM-MSCs), which have a functional TLR4 signaling pathway that mediates LPS effects. LPS alone did not affect the viability
of either cell type within a period of 4 day treatment; however, in the presence of IFNγ, LPS caused apparent cell death of
BM-MSCs but not mESC-FBs. 21 The relative sensitivity of BM-MSCs and mESC-FBs to an
inflammatory environment was further determined by an in vitro macrophage-induced inflammation model in which macrophages were
stimulated with LPS. The conditioned medium collected from LPS-stimulated macrophages (LPS-CM), which contains various inflammatory
cytokines, 85 caused massive cell death of BM-MSCs, but only moderately
reduced viability of mESC-FBs. 21 All inflammatory stimuli that caused the cell death
of BM-MSCs or mESC-FBs, including LPS/IFNγ, LPS-CM, and heat-killed bacteria, had no apparent effect on the viability of mESCs
(unpublished data). These results suggest that the lack of response to LPS allows mESCs, and to a lesser extent mESC-FBs, to minimize
the cytotoxicity of this endotoxin. Together with our previous studies with poly IC and TNFα, 19 , 40 the observations from this study reveals a pattern
indicating that the cells’ sensitivity to the cytotoxicity of inflammatory agents is correlated to the level of cellular
response to these agents.
The negative effects of type I IFNs on cell proliferation and survival has been noted in somatic cells, especially in
malignant cells and infected cells. 86 The reason for the lack of a functional
IFN-based antiviral mechanism in hESCs can be postulated as a protective scenario similar to the case discussed for inflammatory
cytokines since hESCs barely respond to IFNβ. 43 However, mESCs are partially
responsive to IFNα or IFNβ and express ISGs. 19 , 41 , 42 This means that mESCs could benefit from the
antiviral effects of IFNs secreted from trophoblasts via a paracrine mechanism, but how they manage to avoid the potential adverse
effects of IFNs, if there are any, is unclear. However, we did not see IFNα and IFNβ cause detectable negative effects
on proliferation and self-renewal at a wide concentration range in mESCs. 18 One can
speculate that IFN-induced low-level cellular responses in ESCs may limit excessive IFN action or that ESCs may have additional
mechanisms to counterbalance the cytotoxicity of IFNs. Currently, there is no experimental evidence to prove or disprove these
possibilities.
Future
Disturbances of the immunological environment in the uterus are well-known factors that cause failed implantation and
pregnancy complications. 2 , 3 Currently, we have
limited knowledge about how an early embryo at the blastocyst stage deals with immunological and inflammatory challenges. Technically,
in vivo studies are difficult due to the limited number of embryonic cells that are rapidly dividing and differentiating in a
blastocyst. The ethical issues make it even more difficult to study in humans. Therefore, in vitro culture of embryos, ESCs, and TSCs
has become an indispensable tool in the field. In particular, ESCs and TSCs can be propagated in unlimited amounts and kept in an
undifferentiated state, essentially “freezing” them at a state that only exists for several days in vivo. TSCs can be
induced to differentiate into different placental cell lineages while ESCs can be differentiated into specialized tissue cells on
demand by controlling differentiation conditions. 8 , 127 While we have gained ample knowledge in recent years about the immunological property of ESCs, much less is
known about TSCs. With the availability of mTSCs and newly established hTSC lines, understanding the immunological properties of these
cells and their differentiated cells will further uncover the potential of in vitro embryo culture models that have already been
utilized to study other aspects of embryonic development. It is exciting that recent advances in three-dimensional organoid culture
techniques has led to the generation of primitive “organs” from ESC-differentiated cells. 128 It is now feasible to reconstitute a blastocyst-like structure with ESCs and TSC-derived
trophoblasts that can recapitulate certain developmental events of early embryogenesis. 129 , 130 , 131 This model could be
extended to investigate innate immunity development at the blastocyst stage. With the knowledge and resources that have been obtained
from stem cell research, the emergence of new tissue culture models and molecular tools, such as gene editing, will provide more
exciting interdisciplinary opportunities for a deeper understanding of early embryogenesis, immunology, and reproductive biology,
which is otherwise difficult or impossible with in vivo studies.
Innate
If innate immunity is not (or at least not completely) “innate” to ESCs or to their in vivo counterpart PSCs,
then it must be developmentally acquired by somatic cells. Fibroblasts are highly responsive to various immune stimuli and are a major
cell type responsible for maintaining tissue immunity. 62 , 63 Using mESC-differentiated fibroblast-like cells (mESC-FBs) as a model system, we investigated innate immunity
development during in vitro differentiation and demonstrated that mESC-FBs can acquire the ability to express IFNα and
IFNβ and to respond to TNFα during differentiation. 19 , 40 Studies from other investigators have reported similar findings in several types of tissue
cells differentiated from both hESCs and mESCs, including endothelial cells, smooth muscle cells, cardiomyocytes, and
osteoblasts. 12 , 13 , 16 , 64 , 65 These
studies proved the concept that innate immunity in somatic cells is acquired during organismal development.
It is noted that although mESC-EBs have gained the ability to respond to viral stimuli and inflammatory cytokines, their
levels of responsiveness are substantially lower than their naturally differentiated counterparts but can be further developed along
with their continued in vitro propagation. 19 , 40 At the molecular level, cytokine receptors and PRRs, such as TNFR1, TLR3, and MDA5, are upregulated in
ESC-differentiated cells. 13 , 20 , 40 A defining feature after differentiation is the transition of NFκB from the inactive
state in mESCs to the active state in mESC-FBs in response to viral infection and TNFα. This is elegantly demonstrated with a
co-culture model in which mESCs and mESC-FBs are cultured in the same dish and subjected to identical experimental
conditions. 19 , 20 , 40 However, mESC-FBs, mESC-differentiated smooth muscle cells, and hESC-differentiated
endothelial cells still do not respond to LPS. 12 , 16 , 20 , 21 This is, at least partly,
due to the lack of expression of a functional TLR4 at the protein level. 12 , 16 , 20 Consequently, LPS was unable to activate NFκB
and failed to induce inflammatory genes. Apparently, in vitro differentiation can initiate but not effectively promote the development
of innate immunity.
Existence
The idea that the underdeveloped innate immunity in PSCs could be an adaptive mechanism to avoid the negative effects of
immune and inflammatory responses is largely based on studies of in vitro cultured ESCs. Developmentally, however, PSCs only exist
transiently during early embryogenesis. As such, the physiological relevance of the results obtained from ESCs will rest on the
premise that PSCs with similar properties to ESCs indeed exist in the early embryo and that they could be subjected to immunological
and inflammatory insults during the time of their existence. Prior to implantation, the fertilized egg undergoes a series of cell
divisions and develops into a blastocyst. This process is similar in mice and humans, but the time needed for blastocyst formation in
humans is longer than in mice ( Fig. 1 ). The ICM in the blastocyst segregates into the epiblast
(EPI) and the primitive endoderm layer. The blastocyst hatches out of the ZP (at E4.5 in mice and E5-6 in humans) and starts
implantation by invading uterine endometrium. As the implanted blastocyst further develops, the late EPI cells give rise to all the
tissues of the developing fetus in both mice and humans while the extraembryonic endoderm formation and placentation take place
through different mechanisms in the two species ( Fig. 1 ). 87 , 88
mESCs were first isolated from preimplantation blastocysts (E3.5-4.5), which represent a naïve state of pluripotency of
epiblast cells. 89 Cells with pluripotency similar to mESCs were isolated from the
late EPI of post-implantation mouse embryos (E5.5-6.5) and named as epiblast stem cells (EpiSCs, Fig.1 ). 90 , 91 These EpiSCs
represent more developed or “primed” PSCs. Therefore, PSCs exist in early mouse embryos at least up to 3-4 days, but
data about whether or not they exist in the embryo beyond E6.5 is not available. hESCs were derived from pre-implantation blastocysts
produced via in vitro fertilization. 92 The studies that have examined the properties
of hESCs in culture suggest that their pluripotency is more similar to the primed state of mEpiSCs. 87 Since experimental data about post-implantation human embryos is lacking, our understanding of
early human post-implantation development is primarily based on the studies of other organisms, especially non-human
primates. 93 A recent study with cynomolgus monkeys demonstrates that the
late EPI in post-implantation embryos (E13, E14, and E16) retains a stable expression profile of pluripotency-related genes, including
Oct4 and Nanog. Comparative transcriptome analysis indicates that hESCs and hiPSCs show the highest similarity to post-implantation
late EPI cells of the monkey embryo. 94 Based on the developmental correlation of
non-human primate and mouse PSCs, current data suggest that hESCs in conventional culture are in a “primed state” (vs
the native state of mESCs) and are likely to be developmentally equivalent to mEpiSCs. 51 , 93 Therefore, PSCs are present in pre-implantation blastocyst and are
present up to about 12 days in the late post-implantation embryos ( Fig.1 ) of cynomolgus monkeys,
which are closely related to humans.
Potential
The placenta acts as an effective physical and immunological barrier to microbial pathogens, but nevertheless, certain
bacteria and viruses can still breach this barrier and may lead to pregnancy complications. 1 , 95 , 96 Experimental and clinical
data about the susceptibility of human embryos at the blastocyst stage to microbial infection is lacking, but the findings from
limited studies with animal models have provided valuable insights. One early study reported that infection of mice with murine
cytomegalovirus (MCMV) 7 days before and 1 day after mating (around ovulation and implantation) led to retarded embryo development and
a decreased implantation rate 97 However, the retarded embryos collected from the
infected mice could develop normally when cultured in vitro. Therefore, the inflammation in the uterus caused by viral infection,
rather than direct embryo infection, was likely the reason for the observed results. 97 In another study, preimplantation mouse embryos at the 4-8 cell stage were infected with Moloney murine leukemia
virus (M-MuLV), cultured to the blastocyst stage, and then transferred to foster mothers. Of 29 transferred embryos, 15 developed into
young mice (a 50% survival rate similar to uninfected embryos), but only one mouse developed lymphatic leukemia, suggesting that the
infection frequency of preimplantation blastocyst with M-MuLV was rather low but nevertheless possible. 98
Zika virus (ZIKV) has recently caused serious public health concerns due to its implication in causing microcephaly in
newborns. 99 Using a mouse model with vaginal infection with ZIKV, a recent
study demonstrated that when pregnant mice were infected at E4.5, the developing embryo examined at E18.5 showed mild but notable
growth defects, correlating with the infection of neural progenitors in the brain. 100 When the same experiments were performed with IFN receptor 1 deficient mice, ZIKV infection was much more
serious and led to the demise of the embryo. This study demonstrates the susceptibility of early embryos to ZIKV infection and
highlights the importance of the IFN system in protecting against ZIKV infection. In a recent study, we demonstrated that congenital
ZIKV infection of pregnant mice at E8.5 by intraperitoneal injection could lead to postnatal neurobehavioral deficits of ZIKV-infected
newborn mice. The head tissue of ZIKV-infected fetuses examined on E10.5 have reduced expression of the neural development- and
microcephaly-related genes. 101 However, these in vivo studies could not reveal the
time point when the virus had gained access to the embryo or the differentiation stage at which the cells were initially infected.
Interestingly, a recent in vitro study reported that hESCs are susceptible to ZIKV infection. 102 Furthermore, ZIKV can infect hESC-derived trophoblasts (presumably similar to the cellular component of
trophectoderm) with much higher efficiency than cytotrophoblasts and syncytiotrophoblasts derived from term placenta. 102 These findings suggest that both PSCs and the trophectoderm at the blastocyst
stage can be targets of ZIKV. Whether or not these observations reflects what happen in vivo remains to be investigated.
It is interesting to note that in vitro culture of embryos has been used as a model to study embryonic development dating back
to three decades ago. 103 Early studies have indicated that the susceptibility of
preimplantation embryos to viral infection is dependent on types of viruses, age of the embryo, and the presence of ZP. For example,
mouse morulae or blastocysts with ZP are not susceptible to Herpes Simplex Virus-1, Rubella virus, or Sendai virus, but they became
sensitive to Rubella virus and Sendai virus when ZP was removed. 104 – 106 In the case of Rubella virus, infected cells were mainly in the trophectoderm, not
in the ICM cells. 105 Similarly, mouse embryos at the 4-8 cell stage or the
blastocyst stage could be infected with Semliki Forest virus after ZP removal, leading to rapid virus production and cytolysis of the
embryos. 105 However, Simian virus 40 can infect and rapidly kill mouse
embryos at the two-cell, morula, or blastocyst stage even with an intact ZP. While Polyoma virus infection was not deleterious to
blastocysts, the outgrowths of blastocysts disintegrated after infection, and viral proteins were only detected in trophoblast cells
but not in ICM cells. 107 Therefore, ZP can be an effective barrier that prevents
infection from some but not all viruses. Conceivably, hatched blastocysts could be particularly vulnerable to microbial infection.
However, it is important to point out that protection provided by maternal immunity cannot be assessed by in vitro studies.
In mimicking bacterial infection at the time of conception, a mouse model was used in which LPS was administered to the mice.
LPS caused upregulated expression of TNF, IFNγ, and TNF-related apoptosis-inducing ligand (TRAIL) in oviduct and uterine
tissues. 108 Depending on concentrations and time of LPS administration, it
caused failed pregnancy, impaired blastocyst development, or defective embryo development at late gestation. 108 – 110 However, LPS had no direct effect on in
vitro cultured blastocysts at the dosages that caused embryo defects in mice. 108
Therefore, the effects of LPS observed in mice were most likely caused by the elevated levels of embryotoxic cytokines resulting from
maternal systemic or intrauterine inflammation, rather than direct fetal sensitivity to LPS. 108 , 111 How the results from in vitro studies with ESCs reflect PSCs in
the blastocyst and the likelihood that they may get infected in vivo remains to be further investigated. However, the inflammatory
responses, either resulting from implantation and/or from microbial infection, likely have profound effects on embryonic cells.
Introduction
Immune reaction and inflammation are prominent events constituting a complex immunological condition that can dynamically
affect the different stages of pregnancy. 1 Throughout the process of pregnancy, there
must be mechanisms to orchestrate the interaction between the embryo and the maternal immune system. Disturbance of the immunological
balance in the uterus by microbial infection and sterile inflammation induced by non-infectious cellular components can lead to
various pregnancy complications. 2 – 4 In
particular, implantation of an early embryo to the uterus represents the most critical event for the initiation of pregnancy, but it
also elicits immune and inflammatory responses at the maternal–fetal interface. It is estimated that about 30% of naturally
fertilized eggs do not successfully implant. 5 While genetic abnormalities of the
embryo are the major cause of implantation failure, dysregulated immunological and inflammatory responses are also important
contributing factors. 6 Currently, we have limited knowledge about the immunological
properties of embryonic cells at the blastocyst stage and how they respond to the immunological and inflammatory stimuli under
physiological and pathological conditions.
The blastocyst is the structure developed from a fertilized egg before implantation (embryonic days 3.5-4.5 [E3.5-4.5] in mice
and E5-6 in humans). The early blastocyst consists of two major components: the inner cell mass (ICM) and the trophectoderm, which
give rise to the embryo and placenta, respectively. 7 Cells in the blastocyst have a
dedicated task of rapid cell proliferation and differentiation for embryogenesis, but they may encounter high concentrations of
inflammatory cytokines in the reproductive tract and uterus that are known to negatively affect the viability and proliferation of
somatic tissue cells. How embryonic cells in a blastocyst deal with inflammatory and infectious challenges during implantation is an
important yet poorly understood question, especially in humans due to the lack of experimental data. The recent in vitro studies of
embryonic stem cells (ESCs), the pluripotent stem cells (PSCs) experimentally derived from the ICM, and trophoblast stem cells (TSCs),
the multipotent stem cells that give rise to different placental cell lineages, have provided important insights into this fundamental
question in developmental and reproductive biology.
The recent intensive research on ESCs is primarily driven by our interest in using these cells for regenerative
medicine. 8 , 9 Successful derivation of
various cell types from ESCs has now demonstrated the principle and feasibility of their therapeutic application; however, recent
studies of both mESCs and hESCs, 10 – 16
including a series of studies from our laboratory, 17 – 21 have revealed that they have attenuated innate immune responses to bacterial and viral
pathogens and inflammatory cytokines. 22 This may represent an intrinsic property of
all types of PSCs since similar observations were also made in induced pluripotent stem cells (iPSCs). 14 , 15 This finding challenges the concept of innate
immunity, an evolutionarily conserved defense mechanism that is presumably developed in most, if not all, cell types. 23 This review discusses the immune properties of ESCs, the molecular basis for their
underdeveloped innate immune system, and the physiological relevance of the findings derived from in vitro cultured ESCs to in vivo
PSCs residing in early embryos. It will also discuss the hypothesis that attenuated immune responses could be an adaptive mechanism
that allows PSCs to avoid negative impacts from immunological and inflammatory challenges that these cells may encounter during early
embryogenesis at the blastocyst stage.
Underdeveloped
The IFN system has evolved as a major innate antiviral mechanism in vertebrates. 23 , 39 In response to viral infection, cells rapidly synthesize and
secrete IFNs. Through autocrine and paracrine mechanisms, IFNs bind to the cell surface receptor complex, which triggers the
activation of the Janus tyrosine kinases-activator of transcription (JAK-STAT) pathway and induces the expression of numerous
IFN-stimulated genes (ISGs) that promote the cell to enter an “antiviral state.” Therefore, the IFN system includes the
capacity to both produce and respond to IFNs. 23 , 39 The IFN system in ESCs is underdeveloped. In particular, both mESCs and hESCs do not express IFNα and
IFNβ in response to viral infection or synthetic viral RNA analogs. 14 , 17 , 18 , 33 , 40 However, the IFN response mechanism in ESCs from the two species differ to a certain
degree. mESCs have an attenuated but detectable responsiveness to IFNα and IFNβ. Our recent studies 19 , 40 and two earlier studies 41 , 42 in mESCs demonstrated that exogenous IFNα and
IFNβ can induce the expression of several ISGs, protect mESCs from viral infection, and repress replication of several types of
viruses, but the levels of response to the two cytokines in mESCs are substantially weaker than differentiated mouse
fibroblasts. 19 , 40 In contrast, hESCs
and hiPSCs barely respond to IFNβ as judged by their lack of ISG expression. 43 However, IFNβ slightly inhibited infection of hESCs by Coxsackievirus, indicating that the IFN responding
pathway in hESCs is not completely inactive. 44 In addition to inducing IFN response,
viral RNA can directly activate double stranded (ds) RNA-activated protein kinase (PKR) and cause inhibition of both cellular and
viral protein synthesis, thereby repressing viral replication as a separate antiviral mechanism. 45 hESCs and mESCs exhibit notable differences in the activation of the PKR pathway. While PKR is unresponsive
to dsRNA in hESCs, 14 it can be activated by both poly IC (polyinosinic:polycytidylic
acid, a synthetic dsRNA) and La Crosse virus infection, or by cellular dsRNA in mESCs. 18 , 46
Similarly with viral infection, mESCs are susceptible to cytopathic effects of bacterial infection, but they do not mount
antibacterial and inflammatory responses like those typically seen in differentiated cells. 10 , 11 In line with this finding, we recently demonstrated that both mESCs
and hESCs do not respond to lipopolysaccharide (LPS), a bacterial endotoxin that mimics bacterial infection in eliciting the
expression of inflammatory molecules. They also fail to respond to inflammatory cytokines, such as TNFα. 20 The lack of response to these agents are also reported by other investigators in
mESCs 12 , 13 and in miPSCs. 15 Another study suggested that hESCs did not respond to LPS, like mESCs, but responded
to TNFα, in contrast to mESCs. 16 TLR4, the conventional receptor for LPS, is
not expressed in mESCs, but LPS at a very high concentration (10 μg/ml) may elicit response in mESCs through TLR2. 47 Despite some differences reported among different studies and the discrepancies
noted between mESCs and hESCs, current data strongly suggest that the underdeveloped innate immune system is a common feature of PSCs,
including iPSCs since they display similar immunological properties to ESCs, 14 , 15 as summarized in Table 1 . It is particularly
interesting to note that mouse fibroblasts lost their antiviral response after they were reprogrammed to miPSCs, i.e. defective in IFN
expression and in the major TLR signaling pathways. 15
hESCs and mESCs share fundamental similarities in pluripotency and self-renewal, but they display a number of species-specific
differences. 48 For instance, leukemia inhibitory factor is essential for the
maintenance of pluripotency in mESCs but not for hESCs. 49 , 50 mESCs, derived from pre-implantation blastocysts, represent PSCs in a “naïve” state,
whereas hESCs, derived from blastocysts produced by in vitro fertilization, are more differentiated and are considered to be
“primed” PSCs (will be further discussed in section 8 ). 51 Currently, there is no evidence indicating that these differences are responsible for the
discrepancies in the immunological properties noted in mESCs and hESCs. The attenuated response to IFNβ in hESCs and hiPSCs
appears to be due to the constitutively expressed high levels of suppressor of cytokine signaling 1 (SOCS1) that negatively regulate
the IFN signaling pathway. 43 However, the difference in PKR activation between hESCs
and mESCs might be due to the different abundancies of cellular transcripts with dsRNA structures related to repetitive DNA elements
in human and mouse cells. 52 , 53
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